TERAHERTZ INTERACTION CIRCUIT
A terahertz interaction circuit includes a waveguide through which electromagnetic waves pass, the waveguide having a folded shape and including a narrow open cavity portion; and an electron beam tunnel through which an electron beam passes, the electron beam tunnel penetrating through the waveguide.
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This application claims priority from Korean Patent Application No. 10-2011-0084060, filed on Aug. 23, 2011, in the Korean Intellectual Property Office, the disclosure of which is incorporated by reference herein in it entirety.
BACKGROUND1. Field
The present disclosure relates to a terahertz interaction circuit, and more particularly, to a terahertz interaction circuit having a narrow open cavity structure.
2. Description of the Related Art
A terahertz frequency range between a microwave frequency range and an optical frequency range is used in the fields of molecular optics, biophysics, medical science, spectroscopy, or imaging or security. However, there have been few developments in the field of terahertz oscillators or amplifiers for generating terahertz waves due to physical and engineering limitations. Recently, as various new theories and fine processing technologies are introduced, the terahertz oscillators or amplifiers are being developed.
In particular, there has been proposed an interaction circuit for oscillating terahertz waves through the interaction between an electronic beam and an electromagnetic wave in a terahertz oscillator using a vacuum electronic technology. In such an interaction circuit, electric field magnitude and interaction impedance are characteristic factors. As the strength of an electric field magnitude increases, the efficiency of converting the energy of an electronic beam into electromagnetic wave energy is improved. Interaction impedance is a factor in output efficiency and is proportional to the square of the electric field magnitude.
Thus, the electric field magnitude affects the interaction impedance.
SUMMARYOne of more embodiments provide a terahertz interaction circuit having a narrow open cavity structure.
According to an aspect of an embodiment, there is provided a terahertz interaction circuit that includes a waveguide through which electromagnetic waves pass, the waveguide having a folded shape and including a narrow open cavity portion; and an electron beam tunnel through which an electron beam passes, the electron beam tunnel penetrating through the waveguide.
The electron beam tunnel may penetrate through the open cavity portion of the waveguide.
The waveguide may be folded cyclically, each cycle of the waveguide may comprise an open cavity portion, and the electron beam tunnel may penetrate through the open cavity portion of each cycle of the waveguide.
The waveguide may include a first tapered portion connected to one side of the open cavity portion and a second tapered portion connected to the other side of the open cavity portion, each of the first tapered portion and the second tapered portion having a cross section that gradually decreases toward the open cavity portion.
The waveguide may have a rectangular cross section.
The open cavity portion may have a shape that is narrowed along a direction in which the electron beam proceeds as compared to the remaining portions of the waveguide.
The waveguide may have a circular cross section.
The electron beam tunnel may have a rectangular or circular cross section.
Electromagnetic waves of a millimeter wavelength range, a sub-millimeter wavelength range, or a terahertz frequency range may proceed through the waveguide.
The waveguide and the electron beam tunnel may be formed in a block.
The block may be formed of a metal material.
The block may be formed of a non-metal material and inner wall surfaces of the waveguide and the electron beam tunnel are coated with metal.
The above and/or other aspects will become apparent and more readily appreciated from the following description of the embodiments, taken in conjunction with the accompanying drawings in which:
Reference will now be made in detail to embodiments, examples of which are illustrated in the accompanying drawings, wherein like reference numerals refer to the like elements throughout. In this regard, the present embodiments may have different forms and should not be construed as being limited to the descriptions set forth herein. Accordingly, the embodiments are merely described below, by referring to the figures, to explain aspects of the present description.
Referring to
The waveguide 20 having the above-described narrow open cavity structure simultaneously performs a waveguide function and a resonance tube function so that the magnitude of electromagnetic waves passing through the inside of the waveguide 20 may be maximized in the open cavity portion 23. In detail, the magnitude of electromagnetic waves is increased by the first tapered portion 22 and the second tapered portion 24 formed between the input portion 21 and the output portion 25 of the waveguide 20 and simultaneously reflection waves are generated due to an increase in characteristic impedance. The reflection waves concentrate at the open cavity portion 23 located at the central portion of the waveguide 20. As a result, the magnitude of an electric field is increased due to confinement of the electromagnetic waves. Values of characteristic factors of the open cavity portion 23 vary according to inclination angles or shapes of the first tapered portion 22 and the second tapered portion 24.
Referring to
Referring to
Referring to
The waveguide 210, through which electromagnetic waves pass, may have a cyclically folded shape. As described above, the waveguide 110 is folded to effectively reduce the speed of the electromagnetic waves. In a general electromagnetic wave interaction circuit, the speed of the electromagnetic waves proceeding in a waveguide is much faster than that of the electron beam. Thus, by forming the waveguide 210 in a folded shape, the speed of the electromagnetic waves interacting with the electron beam may be effectively reduced. Electromagnetic waves, for example, in a millimeter wavelength range, a sub-millimeter wavelength range, or a terahertz frequency range may proceed in the waveguide 210.
In the embodiment, the waveguide 210 includes an open cavity portion 213 (see
The first tapered portion 212 is a path connecting the body portion 211 and one end of the open cavity portion 213 and has a shape in which a cross section gradually decreases toward the open cavity portion 213, that is, in the y direction. The second tapered portion 214 is a path connecting the other end of the open cavity portion 213 and the body portion 211 and has a shape in which a cross section gradually decreases toward the open cavity portion 213, that is, in the −y direction. The first tapered portion 212 and the second tapered portion 214 may have, for example, a rectangular sectional shape. However, the present invention is not limited thereto and the first tapered portion 212 and the second tapered portion 214 may have circular or various other sectional shapes.
The electron beam tunnel 220 is a path through which electrons pass and is provided to penetrate the waveguide 210 in the block 200. That is, the electron beam tunnel 220 cyclically penetrates through the waveguide 210 having a folded shape. In detail, the electron beam tunnel 220 may penetrate through the open cavity portion 213 of the waveguide 210.
In the terahertz interaction circuit having the above structure, since the open cavity portion 213 that is narrow in the direction in which an electron beam proceeds, that is, in the x direction, is formed in the waveguide 210, the magnitude of an electric field may be increased and the influence on the flow of electromagnetic waves may be minimized so that the interaction between the electron beam and the electromagnetic waves may be more efficiently performed. As described above, since the waveguide 210 having a narrow open cavity structure may simultaneously perform a waveguide function and a resonance tube function, the magnitude of electromagnetic waves passing through the inside of the waveguide 210 may be maximized in the open cavity portion 223. In detail, the magnitude of electromagnetic waves is increased due to the inclination of the first tapered portion 212 and the second tapered portion 214 formed in the waveguide 210 and simultaneously reflection waves are generated due to an increase in characteristic impedance. The reflection waves concentrate at the open cavity portion 213, that is, a narrow portion of the waveguide 210, so that the magnitude of an electric field in the open cavity portion 213 is increased. As the magnitude of an electric field increases, the interaction impedance increases accordingly. As a result, the interaction between the electromagnetic waves and the electron beam are performed efficiently. When the inclination angles of the first tapered portion 212 and the second tapered portion 214 are low, a reflectance of the reflection waves, that is, a reflectance of S11, decreases so that the interaction between the electromagnetic waves and the electron beam may be performed more effectively.
Referring to
As described above, according to exemplary embodiments, since a narrow open cavity structure is formed in the waveguide and the electron beam and the electromagnetic waves interact in the open cavity structure, the magnitude of an electric field may be increased without interfering with the flow of the electromagnetic waves. Also, since interaction impedance increases, the interaction between the electron beam and the electromagnetic waves may be efficiently performed. Furthermore, since the second passband is formed close to the first passband, a large frequency range may be secured.
It should be understood that the exemplary embodiments described therein should be considered in a descriptive sense only and not for purposes of limitation. Descriptions of features or aspects within each embodiment should typically be considered as available for other similar features or aspects in other embodiments.
Claims
1. A terahertz interaction circuit comprising:
- a waveguide through which electromagnetic waves pass and having a folded shape and, the waveguide comprising a narrow open cavity portion; and
- an electron beam tunnel through which an electron beam passes, the electron beam tunnel penetrating through the waveguide.
2. The terahertz interaction circuit of claim 1, wherein the electron beam tunnel penetrates through the open cavity portion of the waveguide.
3. The terahertz interaction circuit of claim 1, wherein the waveguide is folded cyclically, each cycle of the waveguide comprises an open cavity portion, and the electron beam tunnel penetrates through the open cavity portion of each cycle of the waveguide.
4. The terahertz interaction circuit of claim 1, wherein the waveguide further comprises:
- a first tapered portion connected to one side of the open cavity portion; and
- a second tapered portion connected to the other side of the open cavity portion, each of the first tapered portion and the second tapered portion having a cross section that gradually decreases toward the open cavity portion.
5. The terahertz interaction circuit of claim 4, wherein a surface of the first tapered portion is inclined toward the open cavity portion, a surface of the second tapered portion is inclined toward the open cavity portion, and the inclined surfaces of the first and second tapered portions are linear or curved.
6. The terahertz interaction circuit of claim 4, wherein the open cavity portion has a uniform cross section.
7. The terahertz interaction circuit of claim 1, wherein the waveguide has a rectangular cross section.
8. The terahertz interaction circuit of claim 7, wherein the open cavity portion has a shape that is narrowed along a direction in which the electron beam proceeds as compared to remaining portions of the waveguide.
9. The terahertz interaction circuit of claim 1, wherein the waveguide has a circular cross section.
10. The terahertz interaction circuit of claim 1, wherein the electron beam tunnel has a rectangular or circular cross section.
11. The terahertz interaction circuit of claim 1, wherein electromagnetic waves of a millimeter wavelength range, a sub-millimeter wavelength range, or a terahertz frequency range proceed through the waveguide.
12. The terahertz interaction circuit of claim 1, wherein the waveguide and the electron beam tunnel are formed in a block.
13. The terahertz interaction circuit of claim 12, wherein the block is formed of a metal material.
14. The terahertz interaction circuit of claim 12, wherein the block is formed of a non-metal material and inner wall surfaces of the waveguide and the electron beam tunnel are coated with a metal.
15. A terahertz interaction circuit comprising:
- a waveguide comprising a plurality of folded portions and a plurality of straight portions connecting together the folded portions, each of the straight portions comprising an open cavity portion having a cross-sectional area smaller than remaining portions of the waveguide; and
- an electron beam tunnel which passes through the open cavity portions.
16. The terahertz interaction circuit of claim 15, wherein each of the straight portions further comprises a first tapered portion connected to one end of the open cavity portion, and a second tapered portion connected to another end of the open cavity portion.
17. The terahertz interaction circuit of claim 16, wherein the ends of the first tapered portion and the second tapered portion opposite the ends connected to the open cavity portion are connected to respective ones of the folded portions.
Type: Application
Filed: Feb 21, 2012
Publication Date: Feb 28, 2013
Patent Grant number: 8768115
Applicant: SAMSUNG ELECTRONICS CO., LTD. (Suwon-si)
Inventors: Chan-wook BAIK (Yongin-si), Ho-young AHN (Suwon-si)
Application Number: 13/401,304
International Classification: G02B 6/12 (20060101);